Nerol

Nerol is a lipid of Prenol Lipids (PR) class. The involved functions are known as Odorant, Anabolism, Diastasis, Metabolic Inhibition and Oxidation. Nerol often locates in germ tube. The related lipids are Octanols, Pinene, Hexanols, ethyl butyrate and ethyl hexanoate.

Cross Reference

Introduction

To understand associated biological information of Nerol, we collected biological information of abnormalities, associated pathways, cellular/molecular locations, biological functions, related genes/proteins, lipids and common seen animal/experimental models with organized paragraphs from literatures.

What diseases are associated with Nerol?

There are no associated biomedical information in the current reference collection.

No disease MeSH terms mapped to the current reference collection.

PubChem Associated disorders and diseases

What pathways are associated with Nerol

There are no associated biomedical information in the current reference collection.

PubChem Biomolecular Interactions and Pathways

Link to PubChem Biomolecular Interactions and Pathways

What cellular locations are associated with Nerol?

Related references are published most in these journals:

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What functions are associated with Nerol?


Related references are published most in these journals:

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What lipids are associated with Nerol?

Related references are published most in these journals:

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What genes are associated with Nerol?

There are no associated biomedical information in the current reference collection.

What common seen animal models are associated with Nerol?

There are no associated biomedical information in the current reference collection.

NCBI Entrez Crosslinks

All references with Nerol

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Authors Title Published Journal PubMed Link
Bartlett DL et al. Purification of farnesylpyrophosphate synthetase by affinity chromatography. 1985 Meth. Enzymol. pmid:3894878
Cruz JC et al. Immobilization of enzymes on fumed silica nanoparticles for applications in nonaqueous media. 2011 Methods Mol. Biol. pmid:21553189
Zhao J et al. Dynamic control of ERG20 expression combined with minimized endogenous downstream metabolism contributes to the improvement of geraniol production in Saccharomyces cerevisiae. 2017 Microb. Cell Fact. pmid:28137282
Ratti N et al. Improvement in bioavailability of tricalcium phosphate to Cymbopogon martinii var. motia by rhizobacteria, AMF and Azospirillum inoculation. 2001 Microbiol. Res. pmid:11572454
Höschle B and Jendrossek D Utilization of geraniol is dependent on molybdenum in Pseudomonas aeruginosa: evidence for different metabolic routes for oxidation of geraniol and citronellol. 2005 Microbiology (Reading, Engl.) pmid:16000717
Vinothkumar V et al. Geraniol modulates cell proliferation, apoptosis, inflammation, and angiogenesis during 7,12-dimethylbenz[a]anthracene-induced hamster buccal pouch carcinogenesis. 2012 Mol. Cell. Biochem. pmid:22729742
Nowotarska SW et al. Effect of structure on the interactions between five natural antimicrobial compounds and phospholipids of bacterial cell membrane on model monolayers. 2014 Molecules pmid:24914896
Liang D et al. Construction of the 1,2-dialkenylcyclohexane framework via Ireland-Claisen rearrangement and intramolecular Barbier reaction: application to the synthesis of (±)-Geijerone and a diastereoisomeric mixture with its 5-epimer. 2014 Molecules pmid:24448064
Togashi N et al. Effects of two terpene alcohols on the antibacterial activity and the mode of action of farnesol against Staphylococcus aureus. 2008 Molecules pmid:19078849
Arteaga JF et al. Comparison of the simple cyclic voltammetry (CV) and DPPH assays for the determination of antioxidant capacity of active principles. 2012 Molecules pmid:22555300